The relationship between genome, epigenome, and performance in long-live plants
The relationship between genome, epigenome, and performance in long-live plants
批准号:
RGPIN-2017-06552
负责人:
Braeutigam, Katharina
金额:
$2.19万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2019
资助国家:
加拿大
项目状态:
已结题
起止时间:
2019-01-01 至 2020-12-31
中文摘要
不动的有机体不能简单地逃避不利的、有压力的条件。然而,它们可以在不同的环境条件下表现出显着的灵活性,以确保生长和生存。特别是像树木这样长寿的植物,表现出惊人的灵活性。除了遗传成分外,表观遗传机制在促成这种“表型可塑性”方面发挥关键作用。表观遗传学,字面意思是“高于遗传学”,是指研究基因功能的变化,这些变化可以在响应内部或外部信号时诱导,可以在细胞分裂中遗传,但不是由生物体DNA的变化引起的。因此,表观遗传标记可以在分子水平上提供额外的可塑性。我的研究目标是调查表观基因组的重塑如何与长寿植物的压力“记忆”和生命周期特征相关。在接下来的五年里,我的实验室将致力于以下三个相互关联的研究目标,以白杨作为树种的模型。*1:我们将提供一个深入的表征表观遗传库存在一个长寿的植物,重点是基因功能,保护和多样化。这将为后续实验提供必要的信息,并将为表观遗传机制的功能提供新的见解。第二章:我们将使用一种综合的方法,结合生理学和分子模式与系统水平的数据分析,分析长寿命植物的压力诱导的表观遗传模式。这项工作将使我们能够更深入地了解植物与环境相互作用的可塑性,以及表观遗传机制在促进压力“记忆”中的作用。3.我们将探索人工诱导的表观遗传多样性,通过靶向选定的组成部分的表观遗传机制的树木。这将使我们能够在不直接改变植物遗传组成的情况下创造分子和功能变异,补充我们对自然诱导的表观遗传多样性的理解,并为替代树木育种策略提供材料。** 拟议研究的结果将提供迄今为止对长寿植物表观基因组功能,压力“记忆”和表型可塑性的最全面的理解。这些发现不仅具有科学意义,还将对种植园、育种策略以及我们对气候变化下树木表现的理解产生影响。** 高素质的人员(HQP)将是拟议研究的各个方面的关键。HQP将获得最先进的技术和方法(表观遗传学,树木生理学,生物信息学)的独特组合的专业知识,这将为未来的科学领导者提供在研究和创新的现代职业生涯中取得成功所需的技能。
英文摘要
Immobile organisms cannot simply evade unfavorable, stressful, conditions. They can, however, show a remarkable flexibility under varying environmental conditions that ensures growth and survival. Especially long-lived plants like trees exhibit such an astonishing flexibility. In addition to a genetic component, epigenetic mechanisms play key roles in contributing to this “phenotypic plasticity”. Epigenetics, literally “above genetics”, refers to the study of changes in gene function that can be induced in response internal or external signals, that can be heritable across cell division but that do not result from changes in an organism's DNA. Thus, epigenetic marks can provide an additional layer of plasticity at the molecular level. The goal of my research is to investigate how remodeling of the epigenome relates to stress “memory” and life cycle characteristics in long-lived plants. In the next five years, my lab will address the following three interconnected research objectives, using the poplar as model for tree species. ******1: We will provide an in-depth characterization of the epigenetic inventory in a long-lived plant with focus on gene function, conservation and diversification. This will generate information necessary for subsequent experiments, and it will provide novel insights into the function of the epigenetic machinery.******2: We will analyze stress-induced epigenetic patterns in long-lived plants by using an integrated approach that combines physiology and molecular patterns with systems-level data analyses. This work will allow us to gain deeper insights into the plasticity of plant-environment interactions and the role that epigenetic mechanisms play in contributing to stress “memory”.******3. We will explore artificially-induced epigenetic diversity by targeting selected components of the epigenetic machinery in trees. This will allow us to create molecular and functional variation without altering the genetic makeup of the plant directly, complementing our understanding of naturally-induced epigenetic diversity and providing the material for alternative tree breeding strategies. ******Results from the proposed research will provide the most comprehensive understanding of epigenome function, stress "memory" and phenotypic plasticity in long-lived plants to date. The findings will not only be of scientific interest, they will have implications for plantations, breeding strategies, and our understanding of tree performance in light of climate change. ******Highly qualified personnel (HQP) will be key to all facets of the proposed research. HQP will gain expertise in a unique combination of state-of-the-art techniques and approaches (epigenetics, tree physiology, bioinformatics), that will provide future scientific leaders with the skills needed to succeed in modern careers in research and innovation.
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依托单位:
The relationship between genome, epigenome, and performance in long-live plants
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The relationship between genome, epigenome, and performance in long-live plants
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批准号:RGPIN-2017-06552
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项目类别:Discovery Grants Program - Individual
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资助金额:$2.19万
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依托单位:
The relationship between genome, epigenome, and performance in long-live plants
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批准号:RGPIN-2017-06552
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项目类别:Discovery Grants Program - Individual
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资助金额:$2.19万
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负责人:Braeutigam, Katharina
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依托单位:
The relationship between genome, epigenome, and performance in long-live plants
-
批准号:RGPIN-2017-06552
-
项目类别:Discovery Grants Program - Individual
-
资助金额:$2.19万
-
财政年份:2018
-
负责人:Braeutigam, Katharina
-
依托单位:
The relationship between genome, epigenome, and performance in long-live plants
-
批准号:RGPIN-2017-06552
-
项目类别:Discovery Grants Program - Individual
-
资助金额:$2.19万
-
财政年份:2017
-
负责人:Braeutigam, Katharina
-
依托单位:
海外基金